

China Mechanical Engineering ›› 2026, Vol. 37 ›› Issue (7): 1763-1770.DOI: 10.3969/j.issn.1004-132X.2026.07.026
WEI Kuanju1,2(
), LI Dayong3, GU Tianhong2, YANG Yutong1(
), WAN Jianping4, HUANG Shiyao1
Received:2025-07-17
Online:2026-07-25
Published:2026-08-18
Contact:
YANG Yutong
魏宽居1,2(
), 李大永3, 顾天虹2, 杨雨童1(
), 万剑平4, 黄诗尧1
通讯作者:
杨雨童
作者简介:魏宽居,男,1989年生,博士研究生。研究方向为铝合金塑性成形。E-mail:Kuanju.Wei17@student.xjtlu.edu.cn基金资助:CLC Number:
WEI Kuanju, LI Dayong, GU Tianhong, YANG Yutong, WAN Jianping, HUANG Shiyao. Adaptive Control of Roll Motion Trajectory Based on Ring Offset and Roundness Error[J]. China Mechanical Engineering, 2026, 37(7): 1763-1770.
魏宽居, 李大永, 顾天虹, 杨雨童, 万剑平, 黄诗尧. 基于环件偏移量和圆度误差的轧辊运动轨迹自适应控制[J]. 中国机械工程, 2026, 37(7): 1763-1770.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cmemo.org.cn/EN/10.3969/j.issn.1004-132X.2026.07.026
| 参数名称 | 数值 | 参数名称 | 数值 |
|---|---|---|---|
| 环件目标内直径/mm | 395 | 导向辊半径/mm | 200 |
| 环件目标外直径/mm | 775 | 锥辊底半径/mm | 275.6 |
| 环件目标轴向高度/mm | 125 | 锥辊顶角/(°) | 32 |
| 环坯初始轴向高度/mm | 140 | 锥辊侧边长/mm | 1000 |
| 环坯初始外直径/mm | 680 | 芯辊半径/mm | 115 |
| 环坯初始内直径/mm | 250 | 驱动辊半径/mm | 525 |
Tab.1 Main parameters of ring rolling modeling
| 参数名称 | 数值 | 参数名称 | 数值 |
|---|---|---|---|
| 环件目标内直径/mm | 395 | 导向辊半径/mm | 200 |
| 环件目标外直径/mm | 775 | 锥辊底半径/mm | 275.6 |
| 环件目标轴向高度/mm | 125 | 锥辊顶角/(°) | 32 |
| 环坯初始轴向高度/mm | 140 | 锥辊侧边长/mm | 1000 |
| 环坯初始外直径/mm | 680 | 芯辊半径/mm | 115 |
| 环坯初始内直径/mm | 250 | 驱动辊半径/mm | 525 |
| w(Zn) | w(Mg) | w(Cu) | w(Zr) | w(Fe) | w(Al) |
|---|---|---|---|---|---|
| 10 | 2.3 | 1.2 | 0.15 | 0.05 | Bal. |
Tab.2 Mass fraction of composition in Al-Zn-Mg-Cu alloy
| w(Zn) | w(Mg) | w(Cu) | w(Zr) | w(Fe) | w(Al) |
|---|---|---|---|---|---|
| 10 | 2.3 | 1.2 | 0.15 | 0.05 | Bal. |
| 设计值 | 模拟值 | 节点误差的标准差 | |
|---|---|---|---|
| 外径 | 775.00 | 773.15 | 13.34 |
| 高度 | 125.00 | 125.81 | 3.12 |
Tab.3 Comparison of finished ring size and error
| 设计值 | 模拟值 | 节点误差的标准差 | |
|---|---|---|---|
| 外径 | 775.00 | 773.15 | 13.34 |
| 高度 | 125.00 | 125.81 | 3.12 |
| 控制方法 | 偏移量 | 圆度误差 | ||
|---|---|---|---|---|
| 轧制全程 | 轧制后期 | 轧制全程 | 轧制后期 | |
| 初始规划 | 6.20 | 6.95 | 13.23 | 20.32 |
| 导向辊运动控制 | 4.90 | 5.19 | 11.47 | 12.01 |
| 芯辊运动控制 | 4.81 | 5.43 | 11.58 | 11.31 |
| 锥辊运动控制 | 4.99 | 3.99 | 12.66 | 12.35 |
| 轧辊综合控制 | 3.33 | 2.69 | 10.98 | 10.42 |
Tab.4 The average values of offsets and roundness errors of different control methods
| 控制方法 | 偏移量 | 圆度误差 | ||
|---|---|---|---|---|
| 轧制全程 | 轧制后期 | 轧制全程 | 轧制后期 | |
| 初始规划 | 6.20 | 6.95 | 13.23 | 20.32 |
| 导向辊运动控制 | 4.90 | 5.19 | 11.47 | 12.01 |
| 芯辊运动控制 | 4.81 | 5.43 | 11.58 | 11.31 |
| 锥辊运动控制 | 4.99 | 3.99 | 12.66 | 12.35 |
| 轧辊综合控制 | 3.33 | 2.69 | 10.98 | 10.42 |
| 参数 | 轧制全程 | 轧制后期 |
|---|---|---|
| 初始规划的偏移量 | 6.20 | 6.95 |
| 初始规划的圆度误差 | 13.23 | 20.32 |
| 轧制时间延长的偏移量 | 4.56 | 4.92 |
| 轧制时间延长的圆度误差 | 11.08 | 12.56 |
Tab.5 Offset and roundness error of initial planning and rolling time extension scheme
| 参数 | 轧制全程 | 轧制后期 |
|---|---|---|
| 初始规划的偏移量 | 6.20 | 6.95 |
| 初始规划的圆度误差 | 13.23 | 20.32 |
| 轧制时间延长的偏移量 | 4.56 | 4.92 |
| 轧制时间延长的圆度误差 | 11.08 | 12.56 |
| 轧制全程 | 轧制后期 | ||
|---|---|---|---|
| 偏移量 | 优化前 | 4.56 | 4.92 |
| 优化后 | 2.79 | 2.85 | |
| 圆度误差 | 优化前 | 11.08 | 10.54 |
| 优化后 | 12.56 | 7.55 | |
Tab.6 The errors before and after the optimization of the rolling time extension scheme
| 轧制全程 | 轧制后期 | ||
|---|---|---|---|
| 偏移量 | 优化前 | 4.56 | 4.92 |
| 优化后 | 2.79 | 2.85 | |
| 圆度误差 | 优化前 | 11.08 | 10.54 |
| 优化后 | 12.56 | 7.55 | |
| [1] | XIE Dan, OUYANG Qiuyue, HE Luoyu, et al. Feed Curves for Controlling Ring Rolling Stability in Large-scale Flat Ring Rolling Process[J]. Materials, 2023, 16(9): 3383. |
| [2] | GUO Lianggang, YANG He. Towards a Steady Forming Condition for Radial–Axial Ring Rolling[J]. International Journal of Mechanical Sciences, 2011, 53(4): 286-299. |
| [3] | JENKOUK V, HIRT G, FRANZKE M, et al. Finite Element Analysis of the Ring Rolling Process with Integrated Closed-loop Control[J]. CIRP Annals, 2012, 61(1): 267-270. |
| [4] | 钱东升, 田汉, 邓加东. 面向极大尺度环件径-轴向稳定轧制的环件匀速长大状态精准闭环控制方法[J]. 机械工程学报, 2023, 59(10): 85-95. |
| QIAN Dongsheng, TIAN Han, DENG Jiadong. Towards Extremely Large-scale Radial-axial Ring Rolling for Constant Ring Growth State with Accurate Closed-loop Control Method[J]. Journal of Mechanical Engineering, 2023, 59(10): 85-95. | |
| [5] | 郝用兴, 张红艺, 王超峰, 等. 基于ABAQUS的导向辊运动优化控制[J]. 河南科技, 2017, 44(1): 64-66. |
| HAO Yongxing, ZHANG Hongyi, WANG Chaofeng, et al. The Optimal Control of the Guide Roller Motion Based on ABAQUS[J]. Journal of Henan Science and Technology, 2017, 44(1): 64-66. | |
| [6] | 杨红丽, 冯耿, 吕鑫, 等. 高铁轴承内圈冷辗扩导向辊闭环控制的研究[J]. 机械制造, 2016, 54(1): 37-39. |
| YANG Hongli, FENG Geng, Xin LYU, et al. Study on Closed-loop Control of Guide Roller for Cold Rolling of High-speed Rail Bearing Inner Ring[J]. Machinery, 2016, 54(1): 37-39. | |
| [7] | HUA Lin, DENG Jiadong, QIAN Dongsheng, et al. Modeling and Application of Ring Stiffness Condition for Radial-axial Ring Rolling[J]. International Journal of Machine Tools and Manufacture, 2016, 110: 66-79. |
| [8] | PENG W F, NIU B K, ZHANG J H, et al. A 3D-FEM of Adaptive Movement Control of Guide and Conical Rolls in Ring Rolling Process[J]. The International Journal of Advanced Manufacturing Technology, 2017, 92(9): 3287-3298. |
| [9] | 王雨, 谢丹, 何珞玉, 等. 大型异形环件径-轴向轧制芯辊运动自适应控制[J]. 塑性工程学报, 2021, 28(12): 81-89. |
| WANG Yu, XIE Dan, HE Luoyu, et al. Motion Self-adaptive Control of Mandrel Roll in Radial-axial Rolling for Large Profiled Ring[J]. Journal of Plasticity Engineering, 2021, 28(12): 81-89. | |
| [10] | 宁湘锦, 汪小凯, 华林, 等. 超大型环件径轴向轧制过程稳定性与圆度自适应控制方法研究[J]. 中国机械工程, 2022, 33(11): 1353-1360. |
| NING Xiangjin, WANG Xiaokai, HUA Lin, et al. Research on Stability and Roundness Adaptive Control Method of Radial and Axial Ring Rolling Processes of Super Large Rings[J]. China Mechanical Engineering, 2022, 33(11): 1353-1360. | |
| [11] | ZHANG Ke, WANG Xiaokai, HUA Lin, et al. Numerical Simulation of Intelligent Fuzzy Closed-loop Control Method for Radial–Axial Ring Rolling Process of Super-large Rings[J]. Materials, 2022, 15(14): 5084. |
| [12] | ZHANG Zhiwu, LIU Ruxue, LI Dayong, et al. Investigation on Deformation Behaviors and Dynamic Recrystallization Mechanism of Spray Formed Al–Zn–Mg–Cu Alloy under Hot Compression[J]. Journal of Materials Research and Technology, 2024, 28: 4401-4416. |
| [13] | XIE Zhiqiang, JIA Zhihong, XIANG Kaiyun, et al. Microstructure Evolution and Recrystallization Resistance of a 7055 Alloy Fabricated by Spray Forming Technology and by Conventional Ingot Metallurgy[J]. Metallurgical and Materials Transactions A, 2020, 51(10): 5378-5388. |
| [14] | 钱东升, 时大方, 华林, 等. 大型风电轴承套圈滚道轧制数值模拟与实验[J]. 塑性工程学报, 2013, 20(2): 51-56. |
| QIAN Dongsheng, SHI Dafang, HUA Lin, et al. Numerical Simulation and Experimental Study on Raceway Rolling of Large Wind Power Bearing Ring[J]. Journal of Plasticity Engineering, 2013, 20(2): 51-56. | |
| [15] | Dassault Systèmes. Abaqus Analysis User's Guide (Section 6.3.3: Explicit dynamic analysis) [S]. 2022. |
| [16] | 曹金凤, 石亦平. ABAQUS有限元分析常见问题解答[M]. 北京: 机械工业出版社, 2009: 204-210. |
| CAO Jinfeng, SHI Yiping. Answers to Frequently Asked Questions in ABAQUS Finite Element Analysis[M]. Beijing: China Machine Press, 2009: 204-210 | |
| [17] | 汤翼, 华林, 赵玉民, 等. 立式轧环机轧制中环件运动学规律[J]. 中国机械工程, 2006, 17(3): 287-290. |
| TANG Yi, HUA Lin, ZHAO Yumin, et al. Kinematics Law of Ring in the Ring Rolling Process on a Vertical Ring Rolling Mill[J]. China Mechanical Engineering, 2006, 17(3): 287-290. | |
| [18] | 潘利波, 李汉, 左治江. 环件径轴向轧制过程锥辊旋转运动学分析[J]. 机械设计, 2021, 38(8): 80-83. |
| PAN Libo, LI Han, ZUO Zhijiang. Kinematic Analysis on the Conical Roll's Rotation during the Process of the Ring's Radial-axial Rolling[J]. Journal of Machine Design, 2021, 38(8): 80-83. | |
| [19] | 徐如涛, 黄海玲, 王克鲁, 等. 基于Deform-3D的径轴向环轧有限元模拟时的导向辊约束[J]. 热加工工艺, 2012, 41(3): 87-88. |
| XU Rutao, HUANG Hailing, WANG Kelu, et al. Bound of Guide Roll in Radial-axial Ring Rolling Finite Element Simulation Based on Deform-3D[J]. Hot Working Technology, 2012, 41(3): 87-88. | |
| [20] | ZHOU G, HUA L, QIAN D S. 3D Coupled Thermo-mechanical FE Analysis of Roll Size Effects on the Radial-axial Ring Rolling Process[J]. Computational Materials Science, 2011, 50(3): 911-924. |
| [21] | HUA Lin, PAN Libo, LAN Jian. Researches on the Ring Stiffness Condition in Radial–Axial Ring Rolling[J]. Journal of Materials Processing Technology, 2009, 209(5): 2570-2575. |
| [22] | UTSUNOMIYA H, et al. Harmonic analysis of residual stress distribution in rolled rings[J]. Journal of Materials Processing Technology, 2018, 255: 715-723. |
| [23] | 漆良涛, 肖旻, 郑银霞. 深沟球轴承内圈冷辗扩过程中环件直径增长规律研究[J]. 机械工程与技术, 2020(3): 219-225. |
| QI Liangtao, XIAO Min, ZHENG Yinxia. Research on the Diameter Growing Law of the Inner Ring of the Deep Groove Ball Bearing during the Cold Rolling Process[J]. Mechanical Engineering and Technology, 2020(3): 219-225. | |
| [24] | 华林, 左治江, 兰箭, 等. 环件冷辗扩芯辊进给速度规范设计[J]. 中国机械工程, 2006, 17(9): 953-957. |
| HUA Lin, ZUO Zhijiang, LAN Jian, et al. Control Method Design for Feed Rate of Idle Roller in Cold Ring Rolling[J]. China Mechanical Engineering, 2006, 17(9): 953-957. | |
| [25] | 黄林松, 程明忠, 黄孝卿, 等. J307轮箍径-轴向轧制变形分析[J]. 安徽工业大学学报(自然科学版), 2023, 40(2): 126-132. |
| HUANG Linsong, CHENG Mingzhong, HUANG Xiaoqing, et al. Deformation Analysis of Radial-axial Rolling Process of J307 Railway Tyre[J]. Journal of Anhui University of Technology (Natural Science), 2023, 40(2): 126-132. | |
| [26] | ZHOU Guang, HUA Lin, QIAN Dongsheng, et al. Effects of Axial Rolls Motions on Radial-Axial Rolling Process for Large-scale Alloy Steel Ring with 3D Coupled Thermo-mechanical FEA[J]. International Journal of Mechanical Sciences, 2012, 59(1): 1-7. |
| [27] | ALLWOOD J M, TEKKAYA A E, STANISTREET T F. The Development of Ring Rolling Technology[J]. Steel Research International, 2005, 76(2/3): 111-120. |
| [28] | DENG Jiadong, DI Liang, YUAN Tian, et al. A Novel Constrained Ring Rolling Process of Deep-groove Rings by Coordinate Controlling the Roller Motion[J]. International Journal of Material Forming, 2025, 18(1): 20. |
| [29] | MONTMITONNET P. Hot and Cold Strip Rolling Processes[J]. Computer Methods in Applied Mechanics and Engineering, 2006, 195(48/49): 6604-6625. |
| [1] |
LI Xiao-Li, CHEN Wei, YAN Rong.
Adaptive Compensation of Contour Errors Based on BP Neural Networks
[J]. J4, 201016, 21(16): 1902-1906.
|
| [2] | LIU Huishan, PEI Jiaxing, WU Jinhui, ZHANG Lei, LIAN Peiyuan, TAO Yourui. Modeling and Applications for Pointing Errors of Dual-offset Gregorian Antenna under Random Wind Loads [J]. China Mechanical Engineering, 2026, 37(3): 595-603. |
| [3] | HU Zhichao, CHANG Yong, YANG Fufu, WEN Shengxing. Study on No-undercutting and Its Solution Spaces of Cam Mechanisms with Negative Radius Roller Follower [J]. China Mechanical Engineering, 2026, 37(3): 604-611. |
| [4] | GUO Yuqin, YIN Hang, YANG Dongjie, LIU Chenxi, LI Fuzhu. A Design Method of Wide Blade Ultrasonic Sonotrodes for Both of End and Side Faces Working by Cooperating Frequency Offset Compensation with Stepwise Hierarchical Optimization [J]. China Mechanical Engineering, 2025, 36(12): 2903-2910. |
| [5] | Xiaokai WANG, Gefei ZHENG, Kangwen HUANG, Ziqiang LIU, Xinghui HAN, Lin HUA. Staged Measurement Model and Method for Geometric Shape of Super Large Ring Forging Processes Based on Multi-source Information Fusion [J]. China Mechanical Engineering, 2025, 36(11): 2747-2756. |
| [6] | JI Li, CHEN Meihao. Adaptive Control Method of AMB Based on Characteristic Model and Tracking Differentiator [J]. China Mechanical Engineering, 2025, 36(06): 1363-1370. |
| [7] | HAN Jiang1, 2, ZHANG Wenqiang1, 2, TIAN Xiaoqing1, 2, XIA Lian1, 2. Generation Method of Milling Paths of Open Blisk Channels Based on Parameter Mapping [J]. China Mechanical Engineering, 2025, 36(04): 688-696. |
| [8] | LIU Chunchao1, ZHU Yaguang1, 2, ZHOU Yating1, HAN Zhigang1. Adaptive Impedance Control of Hexapod Robots Based on Virtual Motoneuron System [J]. China Mechanical Engineering, 2025, 36(02): 315-324,332. |
| [9] | NI Tao1, 2, ZHANG Panhong1, 2 , ZHAO Zeren1, 2. Adaptive Variable Impedance Control for Force Sensor-less Joysticks [J]. China Mechanical Engineering, 2024, 35(06): 1034-1043,1051. |
| [10] | HU Pingshan, DING Haoliang, FENG Yangyang, YAN Bo. Contour Offset Algorithm Based on Topological Relationship of Line Segments [J]. China Mechanical Engineering, 2023, 34(20): 2489-2495. |
| [11] | FU Xiang, LIU Zexuan, , LIU Daoyuan, LI Dongyuan, . Pivot Steering Control of Off-road Vehicles Driven by In-wheel Motors [J]. China Mechanical Engineering, 2023, 34(10): 1251-1259. |
| [12] | ZHAO Ximei, WANG Chao, JIN Hongyan. Adaptive Fractional Order Sliding Mode Control for PMSMs Based on NDO [J]. China Mechanical Engineering, 2023, 34(09): 1093-1099,1119. |
| [13] | CHEN Hao, GONG Mingde, ZHAO Dingxuan, ZHANG Wei, ZHANG Yue, HAO Chunyou, . Sensitivity Analysis and Adaptive Tracking Control of Electro-hydraulic Active Suspensions [J]. China Mechanical Engineering, 2023, 34(04): 481-489. |
| [14] | ZHANG Ke, WANG Xiaokai, HUA Lin, HAN Xinghui, NING Xiangjin, . Study on Offset Mechanism and Adaptive Fuzzy Control Method for Radial-axial Ring Rolling Processes of Super Large Rings [J]. China Mechanical Engineering, 2023, 34(01): 109-117. |
| [15] | ZHU An, AI Haiping, CHEN Li. Compliance Control of Dual-arm Space Robot Capture Satellite Based on Barrier Lyapunov Functions [J]. China Mechanical Engineering, 2022, 33(24): 2997-3006. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||